Fixing device and image forming apparatus
A fixing device includes a heater including a substrate and a resistance heating element, an endless belt, a holder, a first heat conductive member and a second heat conductive member arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other, a temperature sensor configured to detect a temperature at an end part of the heater. The temperature sensor is in contact with the first heat conductive member. A position located between first end of the first heat conductive member and the second end of the second heat conductive member is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater.
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The present application claims priority from Japanese Patent Application No. 2021-169881, which was filed on Oct. 15, 2021, the disclosure of which is herein incorporated by reference in its entirety.
BACKGROUND ARTThe following disclosure relates to a fixing device and an image forming apparatus.
There has been known a conventional image forming apparatus, such as an electrophotographic type printer, including a fixing device configured to fix a developer image by heating a sheet on which the image is to be formed. The fixing device normally includes a heater having a resistance heating element, and a temperature sensor configured to detect a temperature of the heater. The fixing device controls a fixing temperature by the heater based on a detected result of the temperature sensor. Moreover, the conventional fixing device includes the heater, a holder supporting the heater and a heat conductive member located between the heater and the holder. In the conventional fixing device, the temperature of the heater is detected by bringing the temperature sensor into contact with the heat conductive member.
DESCRIPTIONDue to support a sheet with a maximum width usable in the fixing device, an elongated heat conductive member with a width determined in accordance with the maximum width usable in the fixing device is used in the conventional fixing device. As a result of this, in the conventional fixing device, there is a possibility that the fixing temperature in fixing operation cannot be detected with high accuracy in a case where a size of a sheet is changed.
Specifically, in the conventional fixing device, in a case where the fixing operation is executed for, for example, the sheet with the minimum width usable in the fixing device, there is a possibility that the temperature sensor disposed at an end part of the heater in a longitudinal direction of the heater detects the temperature of the end part of the heater in the longitudinal direction of the heater by being affected by a temperature of an low-temperature area of a central part of the heater in the longitudinal direction of the heater. As a result of this, in the conventional fixing device, there is a possibility that the temperature sensor cannot detect the temperature at the end part of the heater in the longitudinal direction of the heater with high accuracy.
An aspect of the disclosure relates to a fixing device and an image forming apparatus capable of detecting a fixing temperature with high accuracy regardless of sheet sizes of a sheet S1.
In one aspect of the disclosure, a fixing device includes a heater including a substrate and a resistance heating element disposed on the substrate, an endless belt configured to rotate around the heater, a holder holding the heater, a first heat conductive member and a second heat conductive member each disposed between the heater and the holder and arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other in the longitudinal direction of the heater, the first heat conductive member and the second heat conductive member being configured to conduct heat in the longitudinal direction of the heater, a temperature sensor configured to detect a temperature at an end part of the heater in the longitudinal direction of the heater. The temperature sensor is in contact with the first heat conductive member. A position located between first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater.
In another aspect of the disclosure, an image forming apparatus includes a fixing device. The fixing device includes a heater including a substrate and a resistance heating element disposed on the substrate, an endless belt configured to rotate around the heater, a holder holding the heater, a first heat conductive member and a second heat conductive member each disposed between the heater and the holder and arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other in the longitudinal direction of the heater, the first heat conductive member and the second heat conductive member being configured to conduct heat in the longitudinal direction of the heater, a temperature sensor configured to detect a temperature at an end part of the heater in the longitudinal direction of the heater. The temperature sensor is in contact with the first heat conductive member. A position located between first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater.
The objects, features, advantages, and technical and industrial significance of the present disclosure will be better understood by reading the following detailed description of the embodiments, when considered in connection with the accompanying drawings, in which:
There will be described below a first embodiment of this disclosure with reference to
Configuration of Image Forming Apparatus
As illustrated in
As illustrated in
The sheet supplying roller 32 conveys the sheet S1 accommodated in the sheet-supply tray 31. That is, when the sheet S1 is fed from the sheet-supply tray 31, the sheet S1 placed on the sheet-supply tray 31 is pushed toward the sheet supplying roller 32 by the pressing plate 33, and the sheet S is fed to the conveying roller 34 in accordance with rotation of the sheet supplying roller 32. The conveying roller 34 conveys the sheet S1 toward the registration roller 35. The registration roller 35 conveys the sheet S toward the image forming unit 4 after aligning positions of leading edges of the sheet S.
The image forming unit 4 forms an image on the sheet S1 fed by the sheet-supplier 3 by executing the image forming process. As illustrated in
The polygon mirror 41G is a polygon mirror having a regular hexagonal prism shape, side walls of which are six reflecting surfaces. The polygon mirror 41G is for deflecting light beam L1 emitted from the laser light source to a direction directed toward the photoconductive drum 46. The polygon motor 41M rotates and drives the polygon mirror 41G by being driven by a motor driver, which is not illustrated.
The exposing unit 41 deflects the light beam L1 by the polygon mirror 41G such that the light beam L1 is emitted toward a surface of the photoconductive drum 46 via the polygon mirror 41G, the scanning lens 41L and the reflector 41R. The exposing unit 41 exposes the photoconductive drum 46 by scanning the surface of the photoconductive drum 46 by the light beam L1. As a result of this, an electrostatic latent image is formed on the photoconductive drum 46. The electrostatic latent image constitutes a toner image, which will be described below. The polygon motor 41M is, for example, a brushless DC motor.
The transfer unit 42 includes a transfer roller that cooperates with the photoconductive drum 46 to nip the sheet S1 therebetween, and the transfer unit 42 transfers the toner image from the photoconductive drum 46 to the sheet S1. The charging unit 43 includes, for example, a scorotron type charging unit having a charging wire and a grid portion, which are not illustrated. In the charging unit 43, a charging voltage generated by a high voltage generating circuit, which is not illustrated, is applied to the charging wire, and a grid voltage generated by the high voltage generating circuit is applied to the grid portion. As a result, a corona discharge occurs in the charging unit 43, and the surface of the photoconductive drum 46 is charged with uniformity. The developing unit 44 includes a developing roller 44R and a toner cartridge 44A containing developer such as toner.
It is noted that the present disclosure is not limited to the above described configuration, and the transfer unit 42 may include, for example, a transfer belt in place of the transfer roller. Moreover, the charging unit 43 may include, for example, a charging roller in place of the scorotron type charging unit.
In the image forming unit 4, after the charging unit 43 charges the surface of the photoconductive drum 46 with uniformity, the electrostatic latent image is formed on the surface of the photoconductive drum 46 by the light beam L1 from the exposing unit 41 based on printing data. Moreover, the developing roller 44R supplies toner to the surface of the photoconductive drum 46 on which the electrostatic latent image is formed from the toner cartridge 44A. As a result of this, the electrostatic latent image becomes a visible image, and the toner image is formed on the surface of the photoconductive drum 46. Then, the toner image formed on the surface of the photoconductive drum 46 is transferred to the sheet S1 when the sheet S1 supplied from the sheet-supplier 3 is conveyed to a transfer position which is a position located between the photoconductive drum 46 and the transfer unit 42.
The sheet S1 to which the toner image is transferred is conveyed to the fixing device 45 by the photoconductive drum 46 and the transfer unit 42. The fixing device 45 fixes the toner image formed on the sheet S1 onto the sheet S1. Specifically, the fixing device 45 heat-fixes the toner image formed on the sheet S1 which is conveyed from the photoconductive drum 46 and the transfer unit 42 by using heat generated by a heater 60. The sheet S1 onto which the toner image is heat-fixed is discharged to the discharge tray 6 by the discharging roller 5.
The fixing device 45 includes a pressure roller S1 configured to press the sheet S1 on which the toner image is formed and a heating unit 52 configured to heat the sheet S1 in a state in which the heating unit 52 is in contact with the sheet S1. One of the pressure roller 51 and the heating unit 52 is pressed toward the other of the pressure roller 51 and the heating unit 52 by a pressing unit, which is not illustrated. Accordingly, when the pressing unit is controlled by instructions from a controller, which is not illustrated, a fixing operation of the toner image for the sheet S1 is executed in the fixing device 45 in a state in which a predetermined pressure is applied between the pressure roller 51 and the heating unit 52.
The pressure roller S1 rotates and drives in a clockwise direction in
Configuration of Heating Unit
Here, there will be specifically described the heating unit 52 of the present embodiment with reference to
As illustrated in
The substrate 61 is made of, for example, ceramic material. The two resistance heating elements 62 are formed on a first surface of the substrate 61 by, for example, a printing patterning method such that the two resistance heating elements 62 are parallel to each other. It is noted that the present disclosure is not limited to the above described configuration, and the substrate 61 may be made of metallic material such as stainless. In this case, the two resistance heating elements 62 are formed on the first surface of the substrate 61 in a state in which an insulating layer which is made of such as glass material is interposed between the two resistance heating elements 62 and the first surface of the substrate 61.
The resistance heating element 62 is made of, for example, electrically conductive material having high heat build-up property such as nickel-chrome alloy and iron-chrome alloy, for example. Moreover, a current-supply terminal 63 is connected to a first end 62A of the resistance heating element 62 via a conducting wire 64. Moreover, a conducting wire 65 is connected to a second end 62B of the resistance heating element 62, and the two resistance heating elements 62 are electrically conducting to each other via the conducting wire 65.
A connector, which is not illustrated, is connected to the current-supply terminal 63 attachably and detachably. Electric power is supplied to the resistance heating element 62 in a state in which a power source, which is not illustrated, is connected to the current-supply terminal 63 via the connector. Then, in the heater 60, the resistance heating element 62 is configured to generate heat based on an instruction from the controller. That is, an amount of current supplied to the resistance heating element 62 is controlled, moreover, the amount of heat generated by the resistance heating element 62 is increased and decreased, and the heat-applying from the heater 60 to the belt 53 is controlled.
Moreover, as illustrated in
Moreover, in the fixing device 45, when the fixing operation is executed for the sheet S1 having the minimum width H2, an end area H3 and an end area H4 which are disposed at positions located outside the area of the minimum width H2 in the longitudinal direction of the heater 60 are not-passing-areas through which the sheet S1 having the minimum width H2 does not pass in the fixing operation. As a result of this, the heat in the end area H3 and the end area H4 is not lost by the sheet S1 having the minimum width H2 in the fixing operation, and the temperature of the heater 60 at the end area H3 or the end area H4 easily increases, when compared with the central part of the resistance heating element 62 in the longitudinal direction of the heater 60, that is the area of the minimum width H2.
Moreover, as illustrated in
The belt 53 is an endless belt having flexibility and a heat-resisting property. The belt 53 includes, for example, a base portion made of metallic material such as stainless, and an insulating layer made of synthetic resin such as fluoro-resin and configured to cover the base portion, which are not illustrated. The belt 53 is configured to rotate around the heater 60, the heat conductive member 70, the holder 75, the first temperature sensor 81, the second temperature sensor 82 and the thermostat 83 in a state in which the heater 60, the heat conductive member 70, the holder 75, the first temperature sensor 81, the second temperature sensor 82 and the thermostat 83 are located on an inner side of the belt 53.
Moreover, the inner circumferential surface of the belt 53 is in contact with the nip surface 66A of the heater 60, and the belt 53 is configured such that heat from the heater 60 is transferred to the sheet S1 via the belt 53. Moreover, as illustrated in
The holder 75 is made of synthetic resin material, for example. Moreover, as illustrated in
The heat conductive member 70 is made of metallic material, the thermal conductivity of which is high, such as aluminum, aluminum alloy, and copper. The heat conductive member 70 functions as a heat soaking plate configured to conduct heat in the longitudinal direction of the heater 60 so as to make the temperature of the heater 60 uniform in the longitudinal direction of the heater 60. It is noted that an anisotropic heat conductive member such as a graphite sheet may be used to constitute the heat conductive member 70. In a case where the anisotropic heat conductive member is used as the heat conductive member 70, it is preferable that the heat conductivity of the anisotropic heat conductive member in a longitudinal direction of the anisotropic heat conductive member is greater than the heat conductivity in a thickness direction of the anisotropic heat conductive member.
Moreover, as illustrated in
Moreover, as illustrated in
Moreover, as illustrated in
Moreover, as illustrated in
Each of the first temperature sensor 81 and the second temperature sensor 82 is constituted by a thermistor, for example. It is noted that the first temperature sensor 81 and the second temperature sensor 82 are collectively called a temperature sensor 80 in the following description.
As illustrated in
As illustrated in
It is noted that the present disclosure is not limited to the above described configuration, and the first temperature sensor 81 may be in contact with the second heat conductive member 72 by bringing the protruding member 80B into contact with the back surface of the second heat conductive member 72 without forming the opening 75A1 of the holder 75 and the opening 72A of the second heat conductive member 72.
As illustrated in
The thermostat 83 interrupts energization to the resistance heating element 62 when the heater 60 is abnormally increased in temperature. Specifically, as illustrated in
Moreover, as illustrated in
As described above, the fixing device 45, and the image forming apparatus 1 including the fixing device 45 according to the present embodiment includes the heater 60 having the resistance heating element 62, the holder 75 supporting the heater 60, the heat conductive member 70 disposed between the heater 60 and the holder 75, the second temperature sensor 82 configured to detect the temperature at the second end part of the heater 60 in the longitudinal direction of the heater 60. The heat conductive member 70 includes the first heat conductive member 71 and the second heat conductive member 72. The first heat conductive member 71 and the second heat conductive member 72 are arranged such that the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 are adjacent to each other in the longitudinal direction of the heater 60. The second temperature sensor 82 is in contact with the first heat conductive member 71. The position located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 is located at the position closer to the second temperature sensor 82 than the central position of the resistance heating element 62 in the longitudinal direction of the heater 60. As a result of this, in the present embodiment, when the fixing operation is executed for the sheet S1 having the minimum width H2 usable in the fixing device 45, the second temperature sensor 82 can detect the temperature of the second end part of the heater 60 in the longitudinal direction of the heater 60 by reducing being affected by a temperature of an low-temperature area of the central part of the heater 60 in the longitudinal direction of the heater 60, different from a case where the heat conductive member 70 does not include a position located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72. Accordingly, in the present embodiment, it is possible to configure the fixing device 45 and the image forming apparatus 1 capable of detecting the fixing temperature with high accuracy regardless of sheet sizes of the sheet S1.
Moreover, in the present embodiment, since the second temperature sensor 82 is disposed at the second end part of the resistance heating element 62 in the longitudinal direction of the heater 60, the second temperature sensor 82 can detect the temperature at the second end part of the resistance heating element 62 in the longitudinal direction of the heater 60 where the temperature at which increases more easily than the temperature at the central part of the resistance heating element 62 in the longitudinal direction of the heater 60. Accordingly, it is possible to certainly improve a degree of detecting accuracy of the fixing temperature.
Here, there will be described effects of the fixing device 45 and the image forming apparatus 1 according to the present embodiment with reference to
As illustrated in
In the comparative example, as illustrated in
Moreover, in the comparative example, as illustrated in
As illustrated in
As described above, in the comparative example, in the case where the fixing operation is executed for the sheet S1 with the minimum width H2, the temperature sensor 182 detects the temperature which is lower than an actual temperature at a second end part of the sheet S1, as the temperature at the second end part of the heater 160. As a result of this, in the comparative example, it is hard to detect the temperature of the sheet S1 with high accuracy in the case where the fixing operation is executed for the sheet S1 with the minimum width H2.
On the other hand, in the present embodiment, as illustrated in
As illustrated in
Then, as illustrated in
Moreover, in the present embodiment, as illustrated in
In the present embodiment, however, the heat conductive member 70 is divided into the first heat conductive member 71 and the second heat conductive member 72 in the longitudinal direction of the heater 60. The first heat conductive member 71 and the second heat conductive member 72 are arranged such that the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 are adjacent to each other in the longitudinal direction of the heater 60. Moreover, in the present embodiment, the position located between the first heat conductive member 71 and the second heat conductive member 72 is located at the position closer to the second temperature sensor 82 than the central position of the resistance heating element 62 in the longitudinal direction of the heater 60.
As a result of this, in the present embodiment, the temperature at the second end part of the heater 60 in the longitudinal direction of the heater 60 is not so affected by the temperature at the central part of the heater 60, which is the relatively low temperature area, in the longitudinal direction of the heater 60, different from the comparative example. The temperature distribution of the heater 60 is shown by a waveform G2. Accordingly, as illustrated in
Moreover, as illustrated in
In the present embodiment, however, as described above, the temperature of the heater 60 at the second end part of the heater 60 in the longitudinal direction of the heater 60 is not so affected by the relatively low temperature area located at the central part of the heater 60 in the longitudinal direction of the heater 60, as similar to the case of the sheet S1 with the minimum width H2, due to the first heat conductive member 71. In this case, the temperature distribution of the heater 60 in the fixing operation for the sheet S1 with the intermediate width H5 is shown by a waveform G4. Accordingly, as illustrated in
It is noted that, as similar to the comparative example, in a case where a single heat conductive member, which is not divided into two members, is used in place of the first heat conductive member 71 and the second heat conductive member 72, the temperatures of the heater 60 at the not-passing-areas which are located outside the sheet S1 with the intermediate width H5 is affected by the relatively low temperature area at the central part of the heater 60 in the longitudinal direction of the heater 60 in the fixing operation for the sheet S1 with the intermediate width H5. In this case, the temperature distribution of the heater 60 is shown by a waveform G5.
As described above, in the present embodiment, the second temperature sensor 82 can accurately detect the temperature of the second end part of the heater 60 in the longitudinal direction of the heater 60 in the fixing operation, regardless of sheet sizes of the sheet S1.
Moreover, as illustrated in
It is noted that, there has been described above the case where the position located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 is set to the position located within the end area H3 in the longitudinal direction of the heater 60, however, the present disclosure is not limited to this. For example, the position located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 may be set to a position located inside the ends of the sheet S1 with the minimum width H2 in the longitudinal direction of the heater 60. That is, the position located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72 may be set to a position within the area of the minimum width H2 in the longitudinal direction of the heater 60 in
In the first modification, as illustrated in
In the second modification, as illustrated in
It is noted that a waveform G7 illustrated in
Moreover, in the second modification, the second temperature sensor 82 detects a temperature, as the temperature at the second end part of the heater 60, lower than a peak temperature in the waveform G7 indicating the temperature distribution of the heater 60 which is the same as the waveform G2 illustrated in
That is, in the second embodiment, it is possible to lower the temperature detected by the second temperature sensor 82 when compared with the case where the second end of the first heat conductive member 71, which is the one end of the first heat conductive member 71 father from the second heat conductive member 72 than the other end of the first heat conductive member 71, is located at the position located inside the ends of the resistance heating element 62 in the longitudinal direction of the heater 60.
As a result of this, in the second modification, it is possible to reduce a heat-resistant temperature of the second temperature sensor 82, and to achieve reducing cost of the heating unit 52 by using the second temperature sensor 82 having a lower heat-resisting property. Moreover, in the second modification, it is possible to make a threshold value for detecting a degree of increase of the temperature at the second end part of the heater 60 in the longitudinal direction of the heater 60 a small value in the controller. Accordingly, it is possible to easily simplify a configuration and an operation of the controller.
Second EmbodimentThere will be described below another embodiment of the present disclosure. It is noted that the same reference numerals as used in the above described embodiment are used to designate the corresponding elements of the second embodiment, and an explanation of which is dispensed with.
As illustrated in
According to the above described configuration, the second embodiment achieves the same effects as the first embodiment. Moreover, in the second embodiment, the thermostat 83 is in contact with the back surface 61A of the substrate 61 of the heater 60 as the same as the first embodiment. Accordingly, it is possible to easily assure a responsiveness of the thermostat 83 to the temperature of the heater 60. That is, since the thermostat 83 is in direct contact with the back surface 61A of the substrate 61 of the heater 60, the thermostat 83 can quickly detect increase of the temperature of the heater 60. Accordingly, the thermostat 83 can quickly detect whether the temperature of the heater 60 reaches the predetermined temperature as an interrupting temperature.
Moreover, in the second embodiment, since the thermostat 83 is disposed at the predetermined space located between the first end of the first heat conductive member 71 and the second end of the second heat conductive member 72, different from the first embodiment, the opening 72B formed in the second heat conductive member 72 in the first embodiment illustrated in
There has been described above the case where the heat conductive member 70 is divided into the first heat conductive member 71 and the second heat conductive member 72, however, it is noted that the present disclosure is not limited to this. That is, for example, if only the fixing device 45 includes the second temperature sensor 82 configured to detect the second end part of the heater 60 in the longitudinal direction of the heater 60 as the temperature sensor and the first heat conductive member 71 in contact with the second temperature sensor 82, and the position located between first end of the first heat conductive member 71 and the second heat conductive member 72 is set to the position closer to the second temperature sensor 82 than the central position of the heater 60 in the longitudinal direction of the heater 60, the number of heat conductive members divided from the heat conductive member 70 and positions located between or among the divided heat conductive members are not limited to the above described disclosure.
While the embodiment has been described above, it is to be understood that the disclosure is not limited to the details of the illustrated embodiment, but may be embodied with various changes, modifications and combinations, which may occur to those skilled in the art, without departing from the spirit and scope of the disclosure. The combinations obtained by the technical configurations disclosed in the embodiments are includes in the technical scope of the present disclosure.
Claims
1. A fixing device, comprising:
- a heater including a substrate and a resistance heating element disposed on the substrate;
- an endless belt configured to rotate around the heater;
- a holder holding the heater;
- a first heat conductive member and a second heat conductive member each disposed between the heater and the holder and arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other in the longitudinal direction of the heater, the first heat conductive member and the second heat conductive member being configured to conduct heat in the longitudinal direction of the heater; and
- a temperature sensor configured to detect a temperature at an end part of the heater in the longitudinal direction of the heater,
- wherein the temperature sensor is in contact with the first heat conductive member,
- wherein a position located between first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater, and
- wherein the temperature sensor is disposed at a position located outside ends of an area where a sheet with a minimum width usable in the fixing device passes.
2. The fixing device according to claim 1,
- wherein the first end of the first heat conductive member in the longitudinal direction of the heater is closer to the temperature sensor than the central position of the resistance heating element in the longitudinal direction of the heater.
3. The fixing device according to claim 1,
- wherein the second end of the second heat conductive member in the longitudinal direction of the heater is closer to the temperature sensor than the central position of the resistance heating element in the longitudinal direction of the heater.
4. The fixing device according to claim 1,
- wherein the position between the first end of the first heat conductive member and the second end of the second heat conductive member is disposed at a position located inside ends of an area where a sheet with a minimum width usable in the fixing device passes.
5. The fixing device according to claim 1,
- wherein the position between the first end of the first heat conductive member and the second end of the second heat conductive member is disposed at a position located outside the ends of the area where the sheet with the minimum width usable in the fixing device passes and inside ends of an area where a sheet with an intermediate width usable in the fixing device passes.
6. The fixing device according to claim 1,
- wherein the temperature sensor is disposed at an end part of the resistance heating element in the longitudinal direction of the heater.
7. The fixing device according to claim 1,
- wherein the temperature sensor is disposed within an area where a sheet with an intermediate width usable in the fixing device passes.
8. The fixing device according to claim 1,
- wherein a second end of the first heat conductive member in the longitudinal direction is disposed at a position located outside ends of the resistance heating element in the longitudinal direction of the heater, and
- wherein the temperature sensor is disposed at a position located outside the ends of the resistance heating element in the longitudinal direction of the heater.
9. The fixing device according to claim 1,
- wherein the second end of the first heat conductive member is disposed at a position closer to a second end of the substrate than a second end of the resistance heating element in the longitudinal direction of the heater, and
- wherein the temperature sensor is disposed at a position closer to the second end of the substrate than the second end of the resistance heating element in the longitudinal direction of the heater.
10. The fixing device according to claim 1, further comprising a thermostat configured to interrupt energization to the resistance heating element when the heater is abnormally increased in temperature,
- wherein the thermostat is disposed at the position located between first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction so as to be in contact with the substrate.
11. The fixing device according to claim 1,
- wherein the first heat conductive member and the second heat conductive member are metal sheets.
12. An image forming apparatus comprising a fixing device, the fixing device including:
- a heater including a substrate and a resistance heating element disposed on the substrate;
- an endless belt configured to rotate around the heater;
- a holder holding the heater;
- a first heat conductive member and a second heat conductive member each disposed between the heater and the holder and arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other in the longitudinal direction of the heater, the first heat conductive member and the second heat conductive member being configured to conduct heat in the longitudinal direction of the heater; and
- a temperature sensor configured to detect a temperature at an end part of the heater in the longitudinal direction of the heater,
- wherein the temperature sensor is in contact with the first heat conductive member,
- wherein a position located between first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater, and
- wherein the temperature sensor is disposed at a position located outside ends of an area where a sheet with a minimum width usable in the fixing device passes.
13. The image forming apparatus according to claim 12,
- wherein the first heat conductive member and the second heat conductive member are metal sheets.
14. A fixing device, comprising:
- a heater including a substrate and a resistance heating element disposed on the substrate;
- an endless belt configured to rotate around the heater;
- a holder holding the heater;
- a first heat conductive member and a second heat conductive member each disposed between the heater and the holder and arranged in a longitudinal direction of the heater such that a first end of the first heat conductive member and a second end of the second heat conductive member in the longitudinal direction of the heater are adjacent to each other in the longitudinal direction of the heater, the first heat conductive member and the second heat conductive member being configured to conduct heat in the longitudinal direction of the heater; and
- a temperature sensor configured to detect a temperature at an end part of the heater in the longitudinal direction of the heater,
- wherein the temperature sensor is in contact with the first heat conductive member,
- wherein a position located between the first end of the first heat conductive member and the second end of the second heat conductive member in the longitudinal direction is closer to the temperature sensor than a central position of the resistance heating element in the longitudinal direction of the heater, and
- wherein the position between the first end of the first heat conductive member and the second end of the second heat conductive member is disposed at a position located outside ends of an area where a sheet with a minimum width usable in the fixing device passes and inside ends of an area where a sheet with an intermediate width usable in the fixing device passes.
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Type: Grant
Filed: Oct 13, 2022
Date of Patent: Aug 6, 2024
Patent Publication Number: 20230118827
Assignee: BROTHER KOGYO KABUSHIKI KAISHA (Nagoya)
Inventor: Kei Ishida (Inuyama)
Primary Examiner: Stephanie E Bloss
Assistant Examiner: Michael A Harrison
Application Number: 18/046,366
International Classification: G03G 15/20 (20060101);